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Published August 13, 2021 | Supplemental Material
Journal Article Open

Application of Heterojunction Ni–Sb–SnO₂ Anodes for Electrochemical Water Treatment

Abstract

Electrochemical oxidation can be used for decentralized wastewater treatment without the addition of chemicals. Antimony-doped tin oxide (Sb-SnO₂: AT) provides a catalytic anode coating that is easily prepared at a relatively low cost. However, there is the potential of Sb leaching during use. To overcome this problem, a heterojunction anode is developed that uses an AT oxide layer as an ohmic contact and a nickel-doped AT oxide layer (NAT) with a substantially lower Sb content as an outer catalytic layer (NAT/AT). The two-layer NAT/AT anode has significantly longer operational lifetimes, lower Sb leaching potential, and higher activities for free radical generation and ozone production than either layer when used alone. Based on experimental results in combination with theory, an anodic ozone activation pathway at the acidic electrode/electrolyte interface is identified as a key •OH source coupled with direct •OH production via water electrolysis. The NAT/AT anode outperforms commercial anodes (e.g., boron-doped diamond and IrO₂) for organic compound destruction and for microbial disinfection. The 1-log removal of carbamazepine (surface area-normalized first-order rate constant k_(CBZ,SA) = 1.13 × 10⁻³ m/s) and 5-log inactivation of E. coli and MS2 virus are achieved within 60 s in synthetic electrolytes. Even though the electrochemical efficiency is lower in the case of latrine wastewater treatment, the energy consumption (e.g., 3.9–14.0 kWh/m³) is low compared to previously reported values.

Additional Information

© 2021 American Chemical Society. Received: March 29, 2021; Revised: May 10, 2021; Accepted: May 14, 2021; Published: June 2, 2021. This research was supported by an investment grant made by the Bill and Melinda Gates Foundation (INV-003227). We are grateful to our program officers, Dr. Carl Hensman and Dr. Doulaye Kone, for their suggestions and guidance. We also thank Dr. Yuanlong Huang for help with headspace ozone measurements and Dr. Nathan Dalleska for help on sample analysis. Author Contributions. (Y.Z. and Y.Y.) These authors contributed equally. The authors declare the following competing financial interest(s): Y.Y. and M.R.H. are inventors on U.S. patent application 16/911,912 (Caltech, filed 06/25/2020) partially based on this work. All other authors declare that they have no competing interests.

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August 20, 2023
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